WO2021227755A1 - Procédé et appareil de transfert intercellulaire - Google Patents

Procédé et appareil de transfert intercellulaire Download PDF

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Publication number
WO2021227755A1
WO2021227755A1 PCT/CN2021/087219 CN2021087219W WO2021227755A1 WO 2021227755 A1 WO2021227755 A1 WO 2021227755A1 CN 2021087219 W CN2021087219 W CN 2021087219W WO 2021227755 A1 WO2021227755 A1 WO 2021227755A1
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Prior art keywords
bandwidth unit
delay
bandwidth
terminal device
unit
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PCT/CN2021/087219
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English (en)
Chinese (zh)
Inventor
郑娟
李超君
费永强
侯海龙
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华为技术有限公司
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Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Priority to JP2022569208A priority Critical patent/JP2023525852A/ja
Priority to EP21805260.3A priority patent/EP4142363A4/fr
Publication of WO2021227755A1 publication Critical patent/WO2021227755A1/fr
Priority to US17/984,600 priority patent/US20230079810A1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W28/00Network traffic management; Network resource management
    • H04W28/16Central resource management; Negotiation of resources or communication parameters, e.g. negotiating bandwidth or QoS [Quality of Service]
    • H04W28/18Negotiating wireless communication parameters
    • H04W28/20Negotiating bandwidth
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/03Reselecting a link using a direct mode connection
    • H04W36/037Reselecting a link using a direct mode connection by reducing handover delay, e.g. latency
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/06Reselecting a communication resource in the serving access point
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0453Resources in frequency domain, e.g. a carrier in FDMA
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0003Two-dimensional division
    • H04L5/0005Time-frequency
    • H04L5/0007Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT
    • H04L5/001Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT the frequencies being arranged in component carriers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/16Performing reselection for specific purposes
    • H04W36/22Performing reselection for specific purposes for handling the traffic

Definitions

  • This application relates to the field of communication technology, and in particular to a handover method and device.
  • the fifth-generation (the Fifth-Generation, 5G) mobile communication technology New Radio (NR) is a very important basis for the next generation of cellular mobile technology.
  • the services of 5G technology are very diverse and can be used for enhanced mobile broadband (Enhanced Mobile).
  • IWSN Industrial Wireless Sensor Network
  • IWSN Video Surveillance
  • NR reduced capability terminal equipment aims to design a device that meets the performance requirements of the IoT market and has complex implementations.
  • the bandwidth capability of NR REDCAP terminal equipment can be much smaller than that of NR legacy terminal equipment.
  • the bandwidth capability of traditional terminal equipment is 100MHz, while the bandwidth capability of NRREDCAP terminal equipment may only be 20MHz.
  • the bandwidth capability of NRREDCAP terminal equipment may be further reduced, for example, 5MHz or 10MHz.
  • REDCAP UE may also be called NR-Light or NR-lite UE.
  • NR REDCAP terminal equipment Since the bandwidth capability of NR REDCAP terminal equipment is much less than 100MHz, the data transmission performance of NR REDCAP terminal equipment is low. Therefore, how to improve the data transmission performance of NR REDCAP terminal equipment is an urgent problem to be solved.
  • the present application provides a switching method and device to solve the problem of how to improve the data transmission performance of terminal equipment.
  • the present application provides a handover method.
  • the execution subject of the method may be the first terminal device, or may be a chip applied to the first terminal device.
  • the following describes the first terminal device of the execution subject as an example.
  • the first terminal device receives bandwidth unit configuration information, where the bandwidth unit configuration information includes configuration information for indicating a first bandwidth unit and configuration information for a second bandwidth unit, and the first terminal device determines to subscribe from the first bandwidth unit Switching to the second bandwidth unit; wherein the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is a first delay, and the first delay is less than the first delay Second delay, the second delay is the switching delay supported by the second terminal device; or the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is N types One of the delays, the N delays are handover delays supported by the first terminal device, N is an integer greater than or equal to 2, and the N delays include the first delay .
  • the switching delay of the first terminal device from the first bandwidth unit to the second bandwidth unit is the first Time delay. Since the first time delay is less than the time delay supported by the traditional terminal equipment in the new wireless NR system, faster switching between bandwidth units can be realized. Therefore, the first terminal equipment can quickly move within a larger system bandwidth. Dynamic data transmission, thereby ensuring frequency selective scheduling gain or frequency diversity gain and/or cell load balance, thereby improving the data transmission performance of the terminal equipment.
  • the first terminal device receives downlink control information, and the downlink control information instructs the first terminal device to switch from the first bandwidth unit to the second bandwidth unit ,
  • the downlink control information includes a first information field, the first information field is less than or equal to 4 bits, and the first information field includes at least one of frequency resource location information or BWP identification information.
  • the present application provides a communication method.
  • the execution subject of the method may be a network device or a chip applied to the network device.
  • the following description will be given by taking a network device as the execution subject as an example.
  • the network device sends bandwidth unit configuration information to the first terminal device.
  • the bandwidth unit configuration information includes configuration information for indicating the first bandwidth unit and configuration information for the second bandwidth unit.
  • the data of the first terminal device is scheduled, wherein the switching delay is the delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit, and the switching delay is the first Delay, the first delay is less than the second delay, and the second delay is a handover delay supported by the second terminal device; or the handover delay is one of N kinds of delays,
  • the N types of delays are handover delays supported by the first terminal device, N is an integer greater than or equal to 2, and the N types of delays include the first delay.
  • the network device sends downlink control information to the first terminal device, and the downlink control information instructs the first terminal device to switch from the first bandwidth unit to the The second bandwidth unit; wherein the downlink control information includes a first information field, the first information field is less than or equal to 4 bits, and the first information field includes at least one of frequency resource location information or BWP identification information item.
  • the first information field jointly indicates the BWP frequency resource location and BWP ID, which can save physical layer signaling overhead and reduce terminal detection complexity.
  • multiplexing the BWP indicator field in the first information field can further save physical layer signaling overhead.
  • the frequency resource location of the first bandwidth unit is different from the frequency resource location of the second bandwidth unit, and the first bandwidth unit is different from the frequency resource location of the second bandwidth unit.
  • the two bandwidth units correspond to the same partial bandwidth BWP identifier, and the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is the first delay.
  • the first information field in the downlink control information can also be multiplexed, which can save signaling overhead.
  • the frequency resource location of the first bandwidth unit is different from the frequency resource location of the second bandwidth unit, and the first bandwidth unit is different from the frequency resource location of the second bandwidth unit.
  • the two bandwidth units correspond to different BWP identifiers, and the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is one of the N delays divided by the first delay Other delays.
  • the first terminal device can reuse the BWP indicator in the downlink control information to implement switching between bandwidth units.
  • the existing bandwidth unit such as BWP
  • bandwidth unit switching instruction method which can save signaling overhead.
  • the first terminal device receives downlink control information, and the downlink control information instructs the first terminal device to switch from the first bandwidth unit to the The second bandwidth unit, wherein the downlink control information includes a first information field, the first information field is less than or equal to 4 bits, and the first information field includes at least one of frequency resource location information or BWP identification information item.
  • the first bandwidth unit and the second bandwidth unit correspond to different BWP identifiers, and the first bandwidth unit and the second bandwidth unit have a correlation
  • the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is the first delay.
  • the first bandwidth unit and the second bandwidth unit correspond to different BWP identifiers, and the first bandwidth unit and the second bandwidth unit have no correlation
  • the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is other delays among the N kinds of delays except the first delay.
  • the first bandwidth unit and the second bandwidth unit when the identifier associated with the first bandwidth unit is the same as the identifier associated with the second bandwidth unit, the first bandwidth unit and the second bandwidth unit The unit has a correlation, or when the switching delay corresponding to the first bandwidth unit is the same as the switching delay corresponding to the second bandwidth unit, the first bandwidth unit and the second bandwidth unit have a correlation.
  • the first bandwidth unit is a bandwidth unit located on a first carrier
  • the second bandwidth unit is a bandwidth unit located on a second carrier
  • a communication device in a third aspect, is provided, and the beneficial effects can be referred to the description of the first aspect and will not be repeated here.
  • the communication device has the function of realizing the behavior in the method example of the first aspect described above.
  • the function can be realized by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules corresponding to the above-mentioned functions.
  • the communication device includes: a transceiver module for receiving bandwidth unit configuration information, where the bandwidth unit configuration information includes configuration information for indicating a first bandwidth unit and configuration information for a second bandwidth unit; A processing module, configured to determine to switch from the first bandwidth unit to the second bandwidth unit, wherein the switching delay from the first bandwidth unit to the second bandwidth unit is the first delay, so The first delay is less than the second delay, and the second delay is the switching delay supported by the second terminal device; or the switching delay from the first bandwidth unit to the second bandwidth unit is N
  • the N kinds of delays are handover delays supported by the device, N is an integer greater than or equal to 2, and the N kinds of delays include the first delay.
  • a communication device is provided, and the beneficial effects can be referred to the description of the second aspect and will not be repeated here.
  • the communication device has the function of realizing the behavior in the method example of the second aspect described above.
  • the function can be realized by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules corresponding to the above-mentioned functions.
  • the communication device includes: a transceiver module for sending bandwidth unit configuration information to the first terminal device, the bandwidth unit configuration information including configuration information for indicating the first bandwidth unit and the second bandwidth Unit configuration information; a processing module for scheduling data of the first terminal device according to the switching delay, where the switching delay is the switching of the first terminal device from the first bandwidth unit to all The delay of the second bandwidth unit, the switching delay is a first delay, the first delay is less than the second delay, and the second delay is a switching delay supported by the second terminal device; or
  • the handover delay is one of the N kinds of delays, the N kinds of delays are the handover delays supported by the first terminal device, and N is an integer greater than or equal to 2, and the N kinds of delays are The delay includes the first delay.
  • a communication device may be the first terminal device in the foregoing method embodiment, or a chip set in the first terminal device.
  • the communication device includes a communication interface, a processor, and optionally, a memory.
  • the memory is used to store computer programs or instructions
  • the processor is coupled with the memory and a communication interface.
  • the communication device is caused to execute the method executed by the first terminal device in the foregoing method embodiment. method.
  • a communication device may be the network device in the foregoing method embodiment, or a chip set in the network device.
  • the communication device includes a communication interface, a processor, and optionally, a memory.
  • the memory is used to store a computer program or instruction, and the processor is coupled with the memory and a communication interface.
  • the processor executes the computer program or instruction
  • the communication device executes the method executed by the network device in the foregoing method embodiment.
  • a computer program product includes: computer program code, which when the computer program code is running, causes the methods executed by the first terminal device in the above aspects to be executed.
  • a computer program product comprising: computer program code, when the computer program code is executed, the method executed by the network device in the above aspects is executed.
  • the present application provides a chip system, which includes a processor, configured to implement the functions of the first terminal device in the methods of the foregoing aspects.
  • the chip system further includes a memory for storing program instructions and/or data.
  • the chip system can be composed of chips, and can also include chips and other discrete devices.
  • the present application provides a chip system, which includes a processor, and is configured to implement the functions of the network device in the methods of the foregoing aspects.
  • the chip system further includes a memory for storing program instructions and/or data.
  • the chip system can be composed of chips, and can also include chips and other discrete devices.
  • the present application provides a computer-readable storage medium that stores a computer program, and when the computer program is executed, the method executed by the first terminal device in the above aspects is implemented.
  • this application provides a computer-readable storage medium that stores a computer program, and when the computer program is executed, the method executed by the network device in the above aspects is implemented.
  • FIG. 1 is a schematic diagram of a network architecture process applicable to an embodiment of the present application
  • FIG. 2 is a schematic flowchart of a handover method provided by an embodiment of the application
  • FIG. 3 is a schematic diagram of a handover delay provided by an embodiment of the application.
  • FIG. 4 is a schematic diagram of a frequency resource location provided by an embodiment of this application.
  • FIG. 5 is a schematic diagram of a partial bandwidth configuration provided by an embodiment of this application.
  • FIG. 6 is a schematic diagram of a partial bandwidth configuration provided by an embodiment of the application.
  • FIG. 7 is a schematic diagram of a partial bandwidth configuration provided by an embodiment of the application.
  • FIG. 8 is a schematic diagram of a partial bandwidth configuration provided by an embodiment of this application.
  • FIG. 9 is a schematic diagram of a partial bandwidth configuration provided by an embodiment of the application.
  • FIG. 10 is a schematic diagram of a scheduled data transmission resource provided by an embodiment of this application.
  • FIG. 11 is a schematic diagram of a virtual carrier provided by an embodiment of this application.
  • FIG. 12 is a schematic structural diagram of a communication device provided by an embodiment of this application.
  • FIG. 13 is a schematic structural diagram of a communication device provided by an embodiment of this application.
  • NR new radio
  • LTE long term evolution
  • LTE-A advanced long term evolution
  • eLTE evolved long term evolution
  • the terminal device first detects the synchronization signal block (synchronization signal block, SSB) sent by the base station.
  • the SSB includes the primary synchronization signal (PSS), the secondary synchronization signal (SSS) and the physical broadcast Channel (physical broadcast channel, PBCH), where PBCH carries master information block (master information block, MIB), if MIB further indicates system information block type 1 (system information block type 1, SIB1) configuration information, or instructions
  • PBCH carries master information block (master information block, MIB)
  • MIB further indicates system information block type 1 (system information block type 1, SIB1) configuration information, or instructions
  • CORESET0 control resource set zero
  • SS search space
  • the terminal device can initiate random access to the base station , Establish a data transmission connection with the base station. After a data transmission channel is established between the terminal device and the base station, the terminal device-specific data transmission can be performed with the base station, including downlink data reception and/or uplink data transmission.
  • the establishment of a data transmission channel between the terminal device and the base station can be understood as the terminal device enters a radio resource control (radio resource control, RRC) connected state (RRC connected state) or enters an RRC inactive state (RRC inactive state).
  • RRC radio resource control
  • the base station can configure the terminal device with a frequency domain resource range that matches the bandwidth capability of the terminal device to ensure subsequent base stations Data transmission with the terminal.
  • the base station configures the terminal device with channel bandwidth (or called carrier) through RRC dedicated signaling.
  • the channel bandwidth is not greater than the bandwidth capability of the terminal device.
  • Different terminal devices can have different channel bandwidth configurations. Different channel bandwidth configurations include: Channel The center frequency point corresponding to the bandwidth and/or the frequency width of the channel bandwidth are different. Therefore, even if the bandwidth capabilities of different terminal devices are the same, the base station can also configure different channel bandwidths for different terminal devices.
  • the base station can complete the data transmission with the terminal device by configuring the bandwidth part (BWP) within the channel bandwidth corresponding to the configured terminal device.
  • BWP bandwidth part
  • Each BWP is composed of a continuous resource block (resource block). , RB).
  • resource block resource block
  • One RB includes 12 subcarriers.
  • the frequency resources included in different BWPs may or may not overlap.
  • the base station is configured with a maximum of 4 BWPs, and the data transmission between the base station and the terminal device can be dynamically adjusted within the range of frequency resources corresponding to the configured BWP (for example, through this BWP scheduling, cross-BWP scheduling).
  • the terminal device can only transmit data with the base station through one activated BWP, that is, the frequency resource corresponding to each data transmission of the terminal device can only be within the range of the frequency resource corresponding to one BWP.
  • the prior art also requires the configured BWP to include SSB in order to implement SSB-based measurement, such as mobility-related radio resource management (radio resource management, RRM) measurement, channel state information (channel state information, CSI) measurement .
  • RRM radio resource management
  • CSI channel state information
  • the channel bandwidth configured for it is not greater than its bandwidth capability, which in turn leads to BWP only being within the configured channel bandwidth not greater than the bandwidth capability of the REDCAP terminal equipment, and is SSB must be included in the configured channel bandwidth and BWP.
  • the channel bandwidth (or carrier) configured by the base station for the REDCAP terminal device can only be concentrated near the bandwidth including the SSB, which causes the frequency resource range corresponding to the data transmission between the narrowband REDCAP terminal device and the base station to be limited only to include Near the bandwidth of the SSB, the SSB here can be a CD-SSB or a non-CD-SSB.
  • REDCAP terminal equipment that is, large-scale REDCAP terminal equipment will appear in a network that includes IoT services, for example, in an Industrial Wireless Sensor Network (IWSN) to perform sensing functions
  • IWSN Industrial Wireless Sensor Network
  • the REDCAP terminal equipment if the REDCAP terminal equipment is scheduled in a larger frequency resource range, it needs to be implemented through carrier switching or channel bandwidth reconfiguration.
  • Carrier switching or channel bandwidth reconfiguration is achieved through RRC signaling, and the configuration delay is large, on the order of hundreds of milliseconds, which affects the data transmission performance of REDCAP terminal equipment.
  • the SSB Under constraints, it is also necessary to consider that within the 20 MHz bandwidth after carrier switching or the channel bandwidth of the REDCAP terminal device after switching or switching, the SSB needs to be included, which can be CD-SSB or non-CD-SSB, which will increase network side overhead.
  • the configured BWP is mainly distributed within the bandwidth capability of REDCAP terminal equipment, which affects the frequency selective scheduling gain and/or frequency diversity gain of REDCAP terminal equipment .
  • the REDCAP terminal equipment is scheduled within a fixed 20MHz within the 100MHz system bandwidth, and the physical downlink shared channel ( The physical downlink shared channel (PDSCH) frequency selective scheduling gain is about 1.6dB loss.
  • PDSCH physical downlink shared channel
  • the embodiments of the present application provide a method to solve the problems found in the present invention.
  • FIG. 1 shows a schematic diagram of a communication system suitable for the communication method of the embodiment of the present application.
  • the communication system 100 includes a network device 101 and a terminal device 102.
  • the network device 101 may be configured with multiple antennas, and the terminal device may also be configured with multiple antennas.
  • the communication system may also include other terminal devices, which will not be illustrated one by one here.
  • the network device may be a wireless access device under various standards, for example, it may be a next-generation base station (next Generation node B, gNB) in an NR system, or a network node that constitutes a gNB, such as DU etc. under the centralized unit-distributed (CU-DU) architecture.
  • gNB next-generation base station
  • CU-DU centralized unit-distributed
  • the terminal device is a device with a wireless transceiving function or a chip that can be installed in the device.
  • the embodiments of the present application may be applied to low-capacity terminal equipment in the NR system, which is referred to as REDCAP terminal equipment for short below.
  • the embodiments of the present application can also be applied to terminal devices in the future update system, such as NR system version 17 (Rel-17) and later version terminal devices or terminal devices in other systems.
  • first terminal device may include at least one of the following:
  • the carrier bandwidth of the first terminal device is not greater than 50MHz, such as at least one of 50MHz, 40MHz, 20MHz, 15MHz, 10MHz, or 5MHz, and the carrier bandwidth of the second terminal device is greater than 50MHz.
  • the number of transmitting and receiving antennas is different.
  • the first terminal device may support 2 reception and 1 transmission (2 reception antennas and 1 transmission antenna), or 1 reception and 1 transmission (1 reception antenna and 1 transmission antenna).
  • the second terminal device can support 4 receiving and 2 transmitting (4 receiving antennas and 2 transmitting antennas). It is understandable that under the condition of realizing the same data transmission rate, since the number of transmitting and receiving antennas of the first type of terminal equipment is less than the number of transmitting and receiving antennas of the second type of terminal equipment, the communication between the first type of terminal equipment and the base station The maximum coverage that can be achieved by the data transmission is smaller than the maximum coverage that can be achieved by the data transmission between the second type of terminal equipment and the base station.
  • the maximum uplink transmit power is different.
  • the maximum uplink transmit power of the first terminal device may be a value from 4 decibel milliwatts (dBm) to 20 dBm.
  • the maximum uplink transmit power of the second terminal device may be 23 dBm or 26 dBm.
  • the protocol version is different.
  • the first terminal device may be a terminal device in NR version 17 (release-17, Rel-17) or a later version of NR Rel-17.
  • the second terminal device may be, for example, a terminal device in NR version 15 (release-15, Rel-15) or NR version 16 (release-16, Rel-16).
  • the second terminal device may also be referred to as NR legacy (NR legacy) terminal device.
  • Carrier aggregation capabilities are different.
  • the first terminal device does not support carrier aggregation
  • the second terminal device may support carrier aggregation.
  • both the first terminal device and the second terminal device can support carrier aggregation, but the maximum number of carrier aggregation supported by the first terminal device at the same time is less than the maximum number of carrier aggregation supported by the second terminal device at the same time.
  • the terminal device supports the aggregation of 2 carriers at most at the same time, and the second terminal device can support the aggregation of 5 carriers or 32 carriers at the same time.
  • the duplex capability is different.
  • the first terminal device supports half-duplex frequency division duplexing (frequency division duplexing, FDD).
  • the second terminal device supports full-duplex FDD.
  • the data processing time capability is different.
  • the minimum time delay between receiving downlink data and sending feedback on the downlink data by the first terminal device is greater than the minimum time delay between receiving downlink data and sending feedback on the downlink data by the second terminal device; and/or, The minimum time delay between sending uplink data by the first terminal device and receiving feedback on the uplink data is greater than the minimum time delay between sending uplink data by the second terminal device and receiving feedback on the uplink data.
  • the baseband processing capability of the first terminal device is lower than the baseband processing capability of the second terminal device.
  • the baseband processing capability may include at least one of the following: the maximum number of MIMO layers supported by the terminal device during data transmission, the number of HARQ processes supported by the terminal device, and the maximum transmission block size (TBS) supported by the terminal device.
  • the peak transmission rate of uplink and/or downlink is different.
  • the peak transmission rate refers to the maximum data transmission rate that a terminal device can reach in a unit time (for example, per second).
  • the uplink peak rate supported by the first terminal device may be lower than the uplink peak rate supported by the second terminal device, and/or the downlink peak rate supported by the first terminal device may be lower than the downlink peak rate supported by the second terminal device.
  • the uplink peak rate of the first terminal device is less than or equal to 50 Mbps
  • the downlink peak rate is less than or equal to 150 Mbps
  • the uplink peak rate of the second terminal device is greater than or equal to 50 Mbps
  • the downlink peak rate is greater than or equal to 150 Mbps.
  • the uplink peak rate or downlink behavior of the first terminal device is on the order of hundreds of Mbps
  • the uplink peak rate or downlink peak rate of the second terminal device is on the order of Gbps.
  • Cache buffer can be understood as the total size of Layer 2 (L2) cache, which is defined as the word buffered in the radio link control (radio link control, RLC) transmission window and reception and reordering window of the terminal device for all radio bearers.
  • L2 Layer 2
  • RLC radio link control
  • PDCP Packet Data Convergence Protocol
  • the buffer can also be understood as the total number of soft channel bits that can be used for hybrid automatic repeat request (Hybrid Automatic Repeat reQuest, HARQ) processing.
  • HARQ Hybrid Automatic Repeat reQuest
  • the first terminal device may be a REDCAP terminal device in the NR system, or the first terminal device may also be called a low-capacity terminal device, a reduced-capacity terminal device, REDCAP UE, Reduced Capacity UE, mMTC UE, etc.
  • the NR system may also include other terminal equipment, such as a second terminal equipment.
  • the second terminal equipment may be a traditional or/normal/high-capacity terminal equipment, and may also be called a traditional terminal equipment or a Legacy UE.
  • the second terminal equipment It has the above-mentioned distinguishing features from the first terminal device.
  • the word "exemplary” is used to mean serving as an example, illustration, or illustration. Any embodiment or design solution described as an "example” in this application should not be construed as being more preferable or advantageous than other embodiments or design solutions. Rather, the term example is used to present the concept in a concrete way.
  • the first terminal device may be a REDDCAP terminal device or an NR system terminal device.
  • the second terminal device may be a traditional terminal device in the NR system.
  • the method includes:
  • Step 201 The network device sends bandwidth unit configuration information to the first terminal device.
  • the bandwidth unit configuration information includes the configuration information used to indicate the first bandwidth unit and the configuration information of the second bandwidth unit, or it can also be understood that the bandwidth unit configuration information may indicate at least two bandwidth units, and the at least two bandwidth units include The first bandwidth unit and the second bandwidth unit.
  • the bandwidth unit configuration information includes frequency resource location information of the bandwidth unit, where the frequency resource location information includes at least one of the following: the bandwidth of the bandwidth unit, the starting frequency resource location of the bandwidth unit, and the ending frequency resource of the bandwidth unit Location;
  • the first bandwidth unit configuration information includes the frequency resource location information of the first bandwidth unit, where the frequency resource location information includes at least one of the following: the bandwidth of the first bandwidth unit, the starting frequency resource location of the first bandwidth unit, and The termination frequency resource location of a bandwidth unit;
  • the second bandwidth unit configuration information includes the frequency resource location information of the second bandwidth unit, where the frequency resource location information includes at least one of the following: the bandwidth of the second bandwidth unit, the bandwidth of the second bandwidth unit The start frequency resource location, and the end frequency resource location of the second bandwidth unit.
  • the configuration information of the first bandwidth unit and the configuration information of the second bandwidth unit can be sent through one configuration information, or through their respective corresponding configuration information. That is, the bandwidth unit configuration information here can correspond to one configuration information, or can be sent separately Corresponding to the configuration information of the first bandwidth and the configuration information of the second bandwidth.
  • the bandwidth unit configuration information carried by radio resource control (RRC) signaling includes the configuration information of the first bandwidth unit and the configuration information of the second bandwidth unit, which can be an information element (IE)
  • IE information element
  • the information included in may also be information included in the IE corresponding to the first bandwidth unit and the IE corresponding to the second bandwidth unit.
  • the bandwidth unit configuration information used to indicate the configuration information of the first bandwidth unit and the configuration information of the second bandwidth unit may be sent through one or more messages or signaling, one piece of information may be sent at a time, or separately Send multiple messages. That is, the bandwidth unit configuration information can be sent through one configuration information, or through their respective corresponding configuration information. That is, the bandwidth unit configuration information here can correspond to one configuration information, or it can correspond to the configuration information of the first bandwidth and the second bandwidth respectively. Bandwidth configuration information.
  • the bandwidth unit configuration information carried by radio resource control (RRC) signaling includes the configuration information of the first bandwidth unit and the configuration information of the second bandwidth unit, which can be an information element (IE)
  • the information included in may also be information included in the IE corresponding to the first bandwidth unit and the IE corresponding to the second bandwidth unit.
  • Step 202 The first terminal device receives bandwidth unit configuration information.
  • Step 203 The first terminal device determines to switch from the first bandwidth unit to the second bandwidth unit.
  • the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is the first delay, the first delay is less than the second delay, and the second delay Delay is the handover delay supported by the second terminal device;
  • the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is one of the N kinds of delays, and the N kinds of delays are the first terminal
  • N is an integer greater than or equal to 2
  • the N types of delays include the first delay
  • the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is one of the N kinds of delays, and the N kinds of delays are the first terminal
  • N is an integer greater than or equal to 2
  • the N types of delays include the first delay, the first delay is less than the second delay, and the second delay is the second terminal
  • the handover delay supported by the device, or the first delay is less than one of the N types of delays except the first delay, or the first delay is also less than the One of the second delay and the N kinds of delays except the first delay.
  • the other type of time delay other than the first time delay is, for example, the second time delay.
  • the first terminal device may determine to switch from the first bandwidth unit to the second bandwidth unit by receiving the instruction information sent by the network device.
  • the instruction information may be through RRC signaling or media intervention control (medium access control). control, MAC) signaling or physical layer signaling.
  • the indication information may be carried in RRC reconfiguration signaling, or may be downlink control information (DCI).
  • the first terminal device can also switch from the first bandwidth unit to the second bandwidth unit by means of a timer, such as a timer preset by the first terminal device in the first bandwidth unit (such as the BWP inactivity timer BWP-inactivity). If the corresponding scheduling information is not detected in timer), the terminal device can switch from the first bandwidth unit to the second bandwidth unit after the timer.
  • a timer such as a timer preset by the first terminal device in the first bandwidth unit (such as the BWP inactivity timer BWP-inactivity). If the corresponding scheduling information is not detected in timer), the terminal device can switch from the first bandwidth unit to the second bandwidth unit after the timer.
  • Step 204 The network device schedules the data of the terminal device according to the handover delay.
  • the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is the first delay, which can achieve faster bandwidth unit switching, so the first terminal device It can quickly and dynamically transmit data within a larger system bandwidth, thereby ensuring frequency selective scheduling gain or frequency diversity gain and/or cell load balance.
  • the bandwidth unit corresponds to a resource consisting of consecutive resource blocks (RB) on a carrier.
  • the resource size corresponding to different bandwidth units may be the same or different; different bandwidth units correspond to Subcarrier spacing (SCS) may be the same or different.
  • SCS Subcarrier spacing
  • the bandwidth corresponding to the bandwidth unit can be expressed by the number of SCS and RB corresponding to the bandwidth unit, or can be directly expressed as L Hz, where L is a positive integer not less than 0.
  • the subcarrier interval corresponding to a bandwidth unit is 30KHz, and the number of RBs is 10, it can be determined that the bandwidth size corresponding to the bandwidth unit is 3.6MHz.
  • the terminal device can perform data transmission with the network device through the resources included in a bandwidth unit (for example, the bandwidth unit includes 20 RBs of RB0 to R19, and the network device schedules the terminal device to transmit DL or UL data on RB5 to RB10).
  • the bandwidth unit may refer to a bandwidth part (bandwidth part, BWP).
  • the first terminal device can respectively determine the frequency resource location of the first bandwidth unit and the frequency resource location of the second bandwidth unit. Based on this, the first terminal can be realized Frequency resource movement for data transmission between equipment and network equipment. That is, before the handover, the first terminal device and the network device perform data transmission within the frequency resource range included in the first bandwidth unit, and after the switch, the first terminal device and the network device perform data transmission within the frequency resource range included in the second bandwidth unit transmission.
  • the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit may refer to the delay corresponding to the switching of the bandwidth unit triggered based on physical layer signaling. Specifically, after receiving the physical layer signaling that triggers the switching of the bandwidth unit, the first terminal device may perform data transmission between the second bandwidth unit and the network device after the switching delay. Alternatively, the time delay for the terminal device to switch from the first bandwidth unit to the second bandwidth unit may also be less than the switching delay, as long as it is ensured that the bandwidth unit switching can be completed outside of the switching.
  • the switching delay T switchDelay corresponding to the switching of the bandwidth unit triggered based on the physical layer signaling is defined as follows: Assume that the first terminal device receives the trigger bandwidth sent by the network device in the downlink time unit n Unit switching physical layer signaling, the first terminal device needs to receive the PDSCH and other physical downlink channels or signals on the nearest downlink time unit after T switchDelay after the downlink time unit n, or the first terminal device needs to receive the PDSCH in the downlink time unit The PUSCH and other physical uplink channels or signals are sent on the nearest uplink time unit after T switchDelay after unit n.
  • the time unit here may be a slot in NR, or a subframe or radio frame in LTE, which is not limited in the embodiment of the present application.
  • T switchDelay an example in FIG. 3 is a time slot unit, the T switchDelay downlink time units after the n most recent downlink time slot unit m1, n or downlink time units after the latest upstream time slot unit m2 , Other situations will not be repeated.
  • the switching delay of the first terminal device from the first bandwidth unit to the second bandwidth unit may have multiple implementation manners, which will be described separately below.
  • the first terminal device may support a handover delay, that is, the first delay.
  • the switching delay is the first time Extension.
  • the first delay has no corresponding relationship with parameters such as the subcarrier spacing of the bandwidth unit, that is, no matter what specific value the SCS takes, the first handover delay is always a value.
  • the first delay corresponding to different subcarrier spacing (SCS) may have different values.
  • the first delay is another value. That is, in the embodiment of the present application, the handover delay corresponding to different SCS can be regarded as a kind of handover delay, for example, the first delay.
  • the first delay is less than the second delay, and the second delay may be a handover delay corresponding to the BWP handover performed by the second terminal device under the corresponding SCS.
  • the N handover delays include at least two handover delays, and the two handover delays include the first delay.
  • the first terminal device switches from the first bandwidth unit in the same carrier to the second bandwidth unit, and the first bandwidth unit and the second bandwidth unit have an association relationship or correlation; or, the first terminal device switches from the first bandwidth unit of the first carrier
  • the bandwidth unit is switched to the second bandwidth unit of the second carrier, and the first bandwidth unit has an association relationship or correlation with the second bandwidth unit.
  • the switching delay for the first terminal device to switch is the first delay; otherwise, the first The switching delay for the terminal device to switch the bandwidth unit is the other delays of the two switching delays except the first delay, and the other delays here are, for example, the second delay.
  • the other delay in the two delays except the first delay may be the third delay.
  • the first terminal device switches from the first bandwidth unit to the second bandwidth unit in the same carrier.
  • the switching delay for the first terminal device to switch the bandwidth unit is the first delay; the first terminal device switches from the first bandwidth of the first carrier The unit switches to the second bandwidth unit of the second carrier, and the switching delay for the first terminal device to switch is the third delay.
  • the N kinds of handover delays include at least three kinds of handover delays, and the three kinds of handover delays include the first delay and the third delay.
  • the first terminal device switches from the first bandwidth unit to the second bandwidth unit in the same carrier, and the first bandwidth unit and the second bandwidth unit have an association relationship or correlation, and the switching delay for the first terminal device to switch is the first Time delay; the first terminal device switches from the first bandwidth unit to the second bandwidth unit in the same carrier, and there is no association or correlation between the first bandwidth unit and the second bandwidth unit, the first terminal device switches The delay is one of the three handover delays except the first delay and the third delay.
  • the other delay here is, for example, the second delay, which corresponds to the second terminal Device bandwidth unit switching delay; the first terminal device switches from the first bandwidth unit of the first carrier to the second bandwidth unit of the second carrier, and the switching delay for the first terminal device to switch is the third delay.
  • the N types of handover delays include at least three types of handover delays, and the three types of handover delays include the first delay and the third delay.
  • the first terminal device switches from the first bandwidth unit to the second bandwidth unit in the same carrier, and the first bandwidth unit and the second bandwidth unit have an association relationship or correlation, and the switching delay for the first terminal device to switch is the first Time delay; the first terminal device switches from the first bandwidth unit to the second bandwidth unit in the same carrier, and there is no association or correlation between the first bandwidth unit and the second bandwidth unit, the first terminal device switches The delay is one of the three handover delays except the first delay and the third delay.
  • the other delay here is, for example, the second delay, which corresponds to the second terminal Switching delay of equipment bandwidth unit;
  • the first terminal device switches from the first bandwidth unit of the first carrier to the second bandwidth unit of the second carrier, and there is an association relationship or correlation between the first bandwidth unit and the second bandwidth unit, and the switching delay is the third time. Extension; the first terminal device switches from the first bandwidth unit of the first carrier to the second bandwidth unit of the second carrier, and there is no association or correlation between the first bandwidth unit and the second bandwidth unit, the first terminal device performs
  • the handover delay of the handover is the other one of the three kinds of handover delays except the first delay and the third delay.
  • the other delay is for example the second delay
  • the second delay corresponds to The second terminal device bandwidth unit switching delay.
  • the N handover delays include at least four handover delays, and the four handover delays include the first delay, the third delay, and the fourth delay.
  • the first terminal device switches from the first bandwidth unit to the second bandwidth unit in the same carrier, and the first bandwidth unit and the second bandwidth unit have an association relationship or correlation, and the switching delay for the first terminal device to switch is the first Time delay
  • the first terminal device switches from the first bandwidth unit to the second bandwidth unit in the same carrier, and there is no association or correlation between the first bandwidth unit and the second bandwidth unit, the switching delay for the first terminal device to switch is Among the four handover delays, the other delay except the first delay, the third delay, and the fourth delay.
  • the other delay can be, for example, the second delay, which corresponds to The second terminal equipment bandwidth unit switching delay;
  • the first terminal device switches from the first bandwidth unit of the first carrier to the second bandwidth unit of the second carrier, and the first bandwidth unit and the second bandwidth unit have an association relationship or correlation, when the first terminal device switches Delay for the third time delay;
  • the first terminal device switches from the first bandwidth unit of the first carrier to the second bandwidth unit of the second carrier, and the first bandwidth unit has no association relationship or correlation with the second bandwidth unit, when the first terminal device switches Delay is the fourth delay.
  • the first delay is less than the second delay
  • the second delay is the handover delay supported by the second terminal device, or the first delay is less than the N delays divided by the first delay.
  • the N delays may include a second delay, and N is an integer greater than or equal to 2.
  • the second to the fifth possible implementation manners described above The other delay in the implementation manner may also be the second delay.
  • the fourth delay is greater than the third delay.
  • the third delay may be smaller than the second delay and not equal to the first delay.
  • the first delay is less than the second delay
  • the second delay is a handover delay supported by the second terminal device.
  • the second time delay has multiple values, there are also multiple possibilities for the first time delay to be smaller than the second time delay.
  • the handover delay supported by the second terminal device, that is, the second delay may be as shown in Table 1.
  • Type 1 and type 2 are based on the second The capability of the terminal equipment is determined. If the capability of the second terminal device only supports type 1, the second delay can correspond to the delay defined in the column of type 1 in Table 1. If the capability of the second terminal device only supports type 2, the second delay can be Correspond to the delay defined in the type 2 column in Table 1.
  • a possible situation is that when the capability of the second terminal device supports type 1, the first delay is less than the second delay, which may mean that the first delay is less than the time defined in the type 1 column in Table 1.
  • the minimum delay in the delay, that is, the first delay is less than 1 ms.
  • the first delay is less than the second delay, which can mean that the first delay is less than the delay defined in the type 2 column in Table 1.
  • the minimum delay, that is, the first delay is less than 3ms.
  • the first delay is less than the second delay, which may mean that the first delay is less than the minimum delay in Table 1, that is, the first delay The delay is less than 1ms.
  • the first delay is less than the second delay, which can mean that the first delay is less than the delay defined in the type 1 column in Table 1.
  • the first delay is less than the second delay, which can mean that the first delay is less than the delay defined in the type 2 column in Table 1.
  • the first terminal device may support N types of handover delays, where N is an integer greater than or equal to 2, and the N types of delays include the first delay.
  • the first delay is less than one of the N kinds of delays except the first delay.
  • each of the N handover delays corresponds to one subcarrier interval or multiple subcarrier intervals.
  • the handover delay corresponding to multiple subcarrier intervals can also be regarded as A kind of time delay, because for bandwidth unit switching, the subcarrier interval corresponding to the switching is determined.
  • the first delay is less than one of the N kinds of delays except the first delay, which may include the following understanding:
  • the first delay is less than one of the N delays except the first delay.
  • SCS 15KHz, 30KHz, 60KHz, 120KHz
  • one of the delays in N except the first delay corresponds to a different value, for example corresponding to X1, X2, X3, X4, then
  • the first delay may only be smaller than at least one of X1, X2, X3, and X4.
  • the relationship between the first delay and X3, X4 is not limited.
  • the first delay is less than the second delay and other delays other than the first delay among the N handover delays, and the second delay is the first delay.
  • the first delay is not only less than the handover delay supported by the second terminal device, but also less than one of the handover delays supported by the second terminal device other than the first delay.
  • the first delay that is less than the handover delay supported by the second terminal device, and the first delay is less than one of the handover delays supported by the handover delay other than the first delay reference may be made to the above description.
  • the first terminal device can support at least two handover delays, and the first delay is less than the other handover delay supported by it.
  • the second delay may or may not be included in the at least two handover delays.
  • the at least two handover delays include the second delay, which can be understood as removing the first delay, and the at least two handover delays also include a delay with the same value as the second delay. To simplify the description, In the embodiment of the present application, it can be considered as the second delay, where the second delay is a short handover delay supported by the second terminal device.
  • the first terminal device may support N types of handover delays, and each of the N types of handover delays corresponds to one subcarrier interval or multiple subcarrier intervals. In the embodiment of the present application, it corresponds to multiple subcarrier intervals.
  • the switching delay of the carrier interval can also be regarded as a kind of delay, because for bandwidth unit switching, the subcarrier interval corresponding to the switching is determined.
  • the N handover delays include at least the first delay.
  • the first delay corresponds to the first subcarrier interval
  • the second delay is the minimum delay corresponding to the first subcarrier interval of the traditional terminal equipment in the NR system.
  • any time delay other than the first time delay among the N types of handover time delays it is less than or equal to the minimum time delay corresponding to the subcarrier interval of the any time delay in the NR system.
  • the subcarrier interval corresponding to the first delay is 30KHz, then according to Table 1, the minimum delay corresponding to 30KHz is 2ms, the second delay is 2ms, and the first delay is less than 2ms.
  • ⁇ NR slot length (ms) First delay (time slot) 0 1 Less than or equal to 1 1 0.5 Less than 2 2 0.25 Less than or equal to 3 3 0.125 Less than or equal to 6
  • the first delay may be the smallest delay among the N kinds of delays.
  • N kinds of delays can also be shown in Table 3.
  • ⁇ NR slot length (ms) First delay (time slot) 0 1 less than 1 1 0.5 Less than or equal to 2 2 0.25 Less than or equal to 3 3 0.125 Less than or equal to 6
  • the first delay among the N handover delays corresponding to the first terminal device is less than 1 time slot, and when ⁇ takes other values (for example, 1 or 2 or 3), Among the N types of handover delays, the corresponding handover delay can be less than or equal to the delay defined in the type 1 column.
  • any time delay other than the first time delay for the N types of handover time delays is less than or equal to any time delay corresponding to the subcarrier interval corresponding to the any time delay in the NR system.
  • the first delay is the smallest delay among the N kinds of delays.
  • N kinds of delays can also be shown in Table 4.
  • ⁇ NR slot length (ms) First delay (time slot) 0 1 less than 1 1 0.5 Less than or equal to 2 2 0.25 Less than or equal to 9 3 0.125 Less than or equal to 18
  • the first delay among the N handover delays corresponding to the first terminal device is less than 1 time slot.
  • the corresponding among the N handover delays The switching delay can be less than or equal to the delay defined in the type 1 column; when ⁇ is 2 or 3, the corresponding switching delay in the N switching delays can be less than or equal to the delay defined in the type 2 column .
  • the first terminal device may report the capability of the first terminal device to the network device, for example, the reported capability is to support type 1 or type 2.
  • the first delay corresponds to the first subcarrier interval
  • the second delay is the delay corresponding to the first subcarrier interval in the NR system of the type supported by the first terminal device.
  • the subcarrier interval corresponding to the any delay is less than or equal to the time corresponding to the type supported by the first terminal device in the NR system.
  • the ability of the first terminal device to report to the network device is to support type 2.
  • the subcarrier interval corresponding to the first delay is 30KHz, then according to Table 1, when the type supported by the first terminal device is type 2, the delay corresponding to 30KHz is 5ms, the second delay is 5ms, and the first delay is less than 5ms.
  • ⁇ NR slot length (ms) First delay (time slot) 0 1 Less than or equal to 3 1 0.5 Less than 5 2 0.25 Less than or equal to 9 3 0.125 Less than or equal to 18
  • the handover delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit may also refer to information based on radio resource control (RRC). Switch the triggered bandwidth unit.
  • RRC radio resource control
  • T RRCdelay bandwidth switching unit to trigger the RRC signaling may be based on the following: n time units is assumed that a downlink RRC signaling bandwidth unit comprising a trigger switch of a last downlink time units, the first terminal device need The PDSCH and other physical downlink channels or signals are received on the nearest downlink time unit after T RRCdelay after the downlink time unit n, or the first terminal device needs to transmit on the nearest uplink time unit after T RRCdelay after the downlink time unit n PUSCH, and other physical uplink channels or signals.
  • T RRCdelay T RRCprocessingDelay + T BWPswitchDelayRRC .
  • T RRCprocessingDelay and T BWPswitchDelayRRC respectively represent the delay introduced by the RRC process and the delay required for the first terminal device to perform bandwidth unit switching.
  • the first delay is less than the second delay, which may refer to: when the switching delay T RRCdelay required for the first terminal device to switch the bandwidth unit is less than the switching time required for the second terminal device to switch the bandwidth unit Extend T RRCdelay , which can include at least one of the following:
  • the handover delay when the first terminal device switches between relevant bandwidth units is the first delay.
  • the handover delay when the first terminal device switches between uncorrelated bandwidth units is the second delay, or is a delay other than the first delay among the N kinds of handover delays and The other time delay is not less than the first time delay, for example, the second time delay.
  • any one of the first delay, the second delay, and the N handover delays may be orthogonal frequency division multiplexing (OFDM).
  • the number of symbols is either represented by the number of slots, or by a specific time value (for example, 140 us, etc.), or in other forms, and is not specifically limited.
  • the first delay may correspond to different SCSs and may be the same time value, for example, a value not greater than 500 us, such as 140 us, or 200 us, or 250 us, or 400 us.
  • the bandwidth unit configuration information may include configuration information of at least two bandwidth units, and the at least two bandwidth units include a first bandwidth unit and a second bandwidth unit.
  • the configuration information of each bandwidth unit may include the frequency resource location and/or identification of the bandwidth unit.
  • the configuration information of each bandwidth unit may also include other content, which is not limited in the embodiment of the present application.
  • the identifier may be a BWP identifier (BWP ID), etc.
  • the frequency resource location can be the location of the center frequency of the bandwidth unit, the location of the frequency corresponding to the lowest resource block of the bandwidth unit, or the location of the frequency corresponding to the highest frequency resource block of the bandwidth unit. Different indexes can be used to correspond to different The location of the frequency resource.
  • the frequency resource position may correspond to the bandwidth and frequency position of the bandwidth unit, for example, the frequency resource position may correspond to the frequency position corresponding to the lowest resource block of the bandwidth unit and the frequency position corresponding to the highest resource block; for another example, the frequency resource position may correspond to the bandwidth unit The frequency location corresponding to the lowest resource block and the size of the resource block included in the bandwidth unit (the size of the resource block included in the bandwidth unit can be understood as the bandwidth corresponding to the bandwidth unit); for another example, the frequency resource location can correspond to the highest resource block of the bandwidth unit The frequency position of the bandwidth unit and the size of the resource block included in the bandwidth unit (the size of the resource block included in the bandwidth unit can be understood as the bandwidth corresponding to the bandwidth unit); for another example, the frequency resource location may correspond to the center frequency position of the bandwidth unit and the bandwidth unit The size of the included resource block (the size of the resource block included in the bandwidth unit can be understood as the bandwidth corresponding to the bandwidth unit).
  • the frequency position corresponding to the lowest frequency resource block of the bandwidth unit can be understood as the resource block with the smallest resource block index corresponding to the bandwidth unit, and the frequency position corresponding to the highest frequency resource block of the bandwidth unit can be understood as the largest resource block corresponding to the bandwidth unit. Indexed resource block.
  • the switching delay is the first delay.
  • the first bandwidth unit is correlated with the second bandwidth unit.
  • FIG. 4 a schematic diagram of the distribution of bandwidth units with different frequency resource positions within the system bandwidth provided by an embodiment of this application.
  • the multiple frequency resource positions in FIG. 4 correspond to the same bandwidth unit identifier such as BWP ID, and the specific frequency resource position 1 to frequency resource position 4 correspond to BWP A.
  • the frequency resources corresponding to different frequency resource positions identified by the same bandwidth unit may or may not overlap.
  • the frequency resource corresponding to frequency resource position 3 partially overlaps the frequency resource corresponding to frequency resource position 2 and the frequency resource corresponding to frequency resource position 4. It can be understood that, in this case, no matter where the frequency resource location of the bandwidth unit is, other configuration parameters corresponding to the bandwidth unit may remain unchanged.
  • the network device may configure multiple bandwidth units included in one BWP through RRC signaling, and different bandwidth units have at least one different frequency parameter, and the different frequency parameter may include at least one:
  • the network device can directly add the frequency resource location information corresponding to the BWP to the BWP configuration information configured through RRC signaling.
  • the BWP configuration information configured by the network device includes 4 The four frequency resource positions are respectively frequency resource position 1 to frequency resource position 4.
  • the frequency resource position (position) can be configured separately for downlink BWP and uplink BWP, can also be configured for downlink BWP only, or only for uplink BWP, or can also be configured for downlink BWP and uplink BWP. This application implements The examples are not specifically limited.
  • the BWP frequency resource location information is configured separately for the downlink BWP and the uplink BWP, which can ensure configuration flexibility; only for the downlink BWP configuration, it is considered that if the base station is configured with a certain number of receiving antennas, this certain number of receiving antennas will bring The receive antenna gain can compensate for the loss of REDCAP UE's frequency-domain selective scheduling gain due to the reduced channel bandwidth, so the handover between uplink BWPs can use the handover delay in the prior art, which can simplify the processing of uplink BWP by REDCAP terminal equipment ;
  • the first terminal device may determine the frequency resource location of the uplink BWP according to the above-menti
  • the network device can add the position indicator corresponding to the BWP ID in the BWP-Downlink IE (below). Further, the position indicator can be included in bwp-common or bwp-dedicated.
  • the position can be associated with at least one of the following corresponding to the position: SCS, BWP center frequency, BWP frequency resource location, where the BWP frequency resource location includes at least one of the following: BWP bandwidth, BWP start frequency resource location, BWP termination Frequency resource location.
  • the same description is also given for different position configurations of UL BWP, and will not be repeated.
  • the position refers to the location of the frequency resource.
  • the BWP-Downlink information element can be expressed as follows:
  • bandwidth size bandwidth size
  • MIMO multiple input multiple output
  • PDCCH physical downlink control channel
  • PUSCH physical uplink control channel
  • the bandwidth unit is BWP, and the same applies when the bandwidth unit is other frequency resources.
  • the switching delay is the second delay, or one of the N delays except the first delay Time delay.
  • the first bandwidth unit has no correlation with the second bandwidth unit.
  • the switching delay of the first terminal device from the first bandwidth unit to the second bandwidth unit is the N delays other than the first delay
  • the other delay for example, may be the second delay.
  • the first bandwidth unit can be understood as the first BWP
  • the second bandwidth unit can be understood as the second BWP.
  • the network device may instruct the first terminal device to perform bandwidth unit switching through physical layer signaling.
  • the physical layer signaling may be downlink control information (DCI), and the DCI format corresponding to the DCI may be, for example, DCI format 0-1, DCI format 1-1, DCI format 0-2, DCI format 1-2, and other DCI formats that support bandwidth unit switching introduced in future communication systems.
  • DCI downlink control information
  • the network device may send downlink control information to the first terminal device, the downlink control information instructing the first terminal device to switch from the first bandwidth unit to the second bandwidth unit.
  • the first terminal device may determine that bandwidth unit switching is required.
  • the downlink control information instructs the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is that the downlink control information instructs the first terminal device to switch from the first terminal device to the second bandwidth unit.
  • the downlink control information may indicate the frequency resource location of the second bandwidth unit, or indicate the BWP ID corresponding to the second bandwidth unit, or indicate the index corresponding to the second bandwidth unit, or indicate other 2.
  • the DCI further instructs the first terminal device to receive the PDSCH or transmit the frequency domain resources occupied by the PUSCH in the second bandwidth unit, and the frequency domain resources occupied by the PDSCH or PUSCH are located in the second bandwidth.
  • the DCI further includes a second information field, and the second information field indicates frequency domain resources occupied by the PDSCH or PUSCH.
  • the first information domain and the second information domain described below are different information domains included in the DCI.
  • the first information domain and the second information domain may also correspond to the same information domain in the DCI, for example, the frequency domain resource indication domain included in the DCI (for example, the Frequency domain resource assignment included in the DCI) is used to jointly indicate the frequency Resource allocation and indication are switched from the first bandwidth unit to the second bandwidth unit, or used to jointly indicate the frequency resource allocation and the switched second bandwidth unit, for example, the first information domain and the second information domain may correspond.
  • the frequency domain resource indication domain included in the DCI for example, the Frequency domain resource assignment included in the DCI
  • the frequency domain resource indication domain included in the DCI is used to jointly indicate the frequency Resource allocation and indication are switched from the first bandwidth unit to the second bandwidth unit, or used to jointly indicate the frequency resource allocation and the switched second bandwidth unit, for example, the first information domain and the second information domain may correspond.
  • the DCI includes a first information field, the first information field corresponds to X bits, and the value of X is not limited.
  • X is a positive integer greater than 0, optionally, X is an integer not greater than 4.
  • the size of the first information field for example, the value of X may be configured through RRC signaling, for example, it may be configured as 1 bit, 2 bits, 3 bits, etc., so that the network device adjusts the size of the first information field to ensure The frequency selective scheduling gain and/or cell load balancing can also ensure the most appropriate design of the first information field size, which helps reduce the DCI signaling overhead.
  • X bits can correspond to a total of 2 ⁇ X states. Each of these 2 ⁇ X states is configured by RRC signaling, that is, the indication information corresponding to each state is configured by RRC signaling. of.
  • the first information field may indicate the frequency resource location of the bandwidth unit after switching, or may indicate the bandwidth unit identifier of the bandwidth unit after switching, or may jointly indicate the frequency resource location and bandwidth unit identifier of the bandwidth unit after switching.
  • the first information field may directly indicate the frequency resource location and the bandwidth unit identifier of the bandwidth unit after the handover.
  • the first information field may include frequency resource location information (for example, bandwidth unit position) and BWP identification information (for example, BWP ID), frequency resource location information is used to indicate the frequency resource location of the bandwidth unit after switching, and BWP identification information is used to indicate the bandwidth unit identifier of the bandwidth unit after switching.
  • the frequency resource location information here corresponds to the frequency resource location information of the bandwidth unit, not the network equipment scheduling terminal equipment to transmit the data transmission resources corresponding to the physical downlink channel and the physical uplink channel.
  • the physical downlink channel includes the physical downlink control channel.
  • physical uplink channel includes physical uplink control channel (physical uplink control channel, PUCCH) and physical uplink shared channel (physical uplink shared channel, PUSCH) ).
  • the first information field may only indicate the frequency resource location of the bandwidth unit after the handover, without indicating the bandwidth unit identifier.
  • the first information field may include frequency resource location information, but not BWP identification information.
  • the first information field includes frequency resource location information
  • the frequency resource location information includes 2 bits
  • it can indicate 4 types of information, which can respectively correspond to 4 different frequency resource locations, for example, 00 corresponds to frequency resource location A, 01 Corresponding to frequency resource position B, 10 corresponds to frequency resource position C, and 11 corresponds to frequency resource position D.
  • the bandwidth units corresponding to the four different frequency resource positions may correspond to the same BWP identifier. This can save signaling overhead and help improve the transmission performance of the physical layer channel.
  • the network device if it is configured with bandwidth units corresponding to at least two frequency resource locations for the first terminal device, it also configures a bandwidth unit corresponding to only one frequency resource location (or understood as configuring a BWP).
  • a bandwidth unit with only one frequency resource location configured the frequency resource location of the bandwidth unit can be indicated through the first information field, so as to indicate the bandwidth unit.
  • frequency resource positions 1 to 3 correspond to bandwidth unit 1
  • frequency resource position 4 corresponds to bandwidth unit 2.
  • the first information field indicates frequency resource position 4, it can correspond to bandwidth unit 2.
  • the first information field may include BWP identification information, but not frequency resource location information.
  • control information field used to indicate the switching between bandwidth units corresponding to the same BWP ID and different frequency resource positions is different from the control information field used to indicate different BWP IDs corresponding to different BWP IDs.
  • the control information field for switching between bandwidth units (for example, different BWPs) of the frequency resource location may correspond to the same information field (for example, BWP indicator) in the DCI, for example, the first information field used for joint indication corresponds to the BWP indicator, or also It can correspond to different information fields.
  • control information field used to indicate the switching between bandwidth units corresponding to the same BWP ID and different frequency resource positions corresponds to the frequency resource position indication field (non-frequency resource position) in DCI.
  • Resource allocation field such as a newly added control field in DCI, or a redundant state field, used to indicate the control information field for switching between bandwidth units corresponding to different BWP IDs and different frequency resource positions (for example, different BWPs) It is the BWP indicator domain.
  • the configuration information of the first bandwidth unit and the configuration information of the second bandwidth unit in an RRC signaling manner, multiple bandwidth units can be configured in one BWP, and different bandwidth units have at least one different frequency parameter).
  • the bandwidth unit configuration information sent by the network device may indicate multiple bandwidth units, and the multiple bandwidth units include a first bandwidth unit and a second bandwidth unit. Both the first bandwidth unit and the second bandwidth unit correspond to an identifier, and the identifier may be a BWP group identifier.
  • the first bandwidth unit and the second bandwidth unit correspond to different BWP group identifiers, the first bandwidth unit is correlated with the second bandwidth unit, and the first terminal device switches from the first bandwidth unit
  • the switching delay to the second bandwidth unit is the first delay.
  • the first bandwidth unit and the second bandwidth unit correspond to different BWP group identifiers
  • the first bandwidth unit has no correlation with the second bandwidth unit
  • the first terminal device receives data from the first bandwidth unit.
  • the switching delay for a bandwidth unit to switch to the second bandwidth unit is the second delay, or other delays among the N kinds of delays except the first delay.
  • the first bandwidth unit and the second bandwidth unit are associated with the same identifier, for example, the same collective identifier (ID) is associated.
  • ID collective identifier
  • the network device can configure the BWP through RRC signaling, the set identifier corresponding to the BWP is configured at the same time, indicating the set to which the bandwidth unit belongs, and the set identifier may be for the downlink BWP used for downlink data and for uplink data
  • the transmitted uplink BWPs are configured separately or at the same time.
  • the network device can add the set identification indication corresponding to the BWP ID in the BWP-Downlink IE (below).
  • the set identification indication may be included in bwp-common or bwp- inside dedicated. The same description is also given for the UL BWP collective identification configuration, which will not be repeated.
  • the set identifier can also be replaced with other identifiers reflecting relevance, such as the following delay identifier gap1, and switching between bandwidth units with the same delay identifier is the first delay.
  • the BWP-Downlink information element can be expressed as follows:
  • the bandwidth unit is the BWP as an example for description.
  • BWP#1 and BWP#2 belong to the same BWP set, and the associated identifiers are the same.
  • BWP#3 does not belong to the BWP set corresponding to BWP#1 and BWP#2, and the identifier associated with BWP#3 is not the same as the identifier associated with BWP#1 or BWP#2, or BWP#3 may not be associated with any identifier.
  • the network device can be configured with at least one BWP set, which includes at least two BWPs, that is, BWP#1 and BWP#2; other BWPs not included in the BWP set can no longer be divided gather.
  • the switching delay when the first terminal device switches between bandwidth units associated with the same identifier is the first delay, and the first terminal device associates bandwidth units with different identifiers as the first delay.
  • the handover delay during the handover between the N types of handover delays is other than the first delay.
  • the handover delay when the first terminal device switches between BWP#1 and BWP#2 is the first delay, and when the first terminal device switches between BWP#1 and BWP#3
  • the handover delay is a delay greater than the first delay, for example, the second delay, or one of the N kinds of delays other than the first delay.
  • the network device may instruct the first terminal device to perform bandwidth unit switching through physical layer signaling
  • the physical layer signaling may be DCI
  • the DCI format corresponding to the DCI may be, for example, It can be DCI format 0-1, DCI format 1-1, DCI format 0-2, DCI format 1-2, and other DCI formats that support bandwidth unit switching introduced in the future communication system.
  • the downlink control information may include the first information field, and the first information field may indicate the bandwidth unit identifier (ie BWP ID) of the bandwidth unit after the handover.
  • the bandwidth unit identifier ie BWP ID
  • the BWP handover field included in the DCI can be directly multiplexed to indicate the handover between the first bandwidth unit and the second bandwidth unit, and the terminal device can configure the BWP group identifier through RRC signaling , It is determined whether the switching delay between different bandwidth units (that is, different BWPs) is the first delay or other delays among the N kinds of delays except the first delay.
  • the bandwidth unit configuration information sent by the network device may indicate multiple bandwidth units, and the multiple bandwidth units include a first bandwidth unit and a second bandwidth unit. Assume that the first bandwidth unit is a bandwidth unit located on a first carrier, and the second bandwidth unit is a bandwidth unit located on a second carrier.
  • the first bandwidth unit and the second bandwidth unit have an association relationship
  • the first bandwidth unit and the second bandwidth unit are irrelevant, and the first bandwidth unit and the second bandwidth unit do not have an association relationship.
  • the handover delay when the first terminal device switches between bandwidth units that have an association relationship is the first delay, and the first terminal device is between bandwidth units that do not have an association relationship.
  • the handover time delay during handover is the second time delay or other time delays among the N kinds of handover time delays except the first time delay.
  • the third embodiment can be applied to a second terminal device configured with an NR uplink (NUL) carrier and a supplementary uplink (SUL) carrier.
  • the first carrier is a NUL carrier and the second carrier is a SUL carrier; or the first carrier is a SUL carrier and the second carrier is a NUL carrier.
  • the SUL carrier can be used in conjunction with the NR FDD frequency band or the NR TDD frequency band.
  • part of the bandwidth unit in the multiple bandwidth units indicated by the bandwidth unit configuration information sent by the network device is the uplink bandwidth unit in the NUL carrier, for example, the first bandwidth unit, and part of the bandwidth unit in the multiple bandwidth units It is the uplink bandwidth unit in the SUL carrier, such as the second bandwidth unit.
  • the network device may configure the association relationship between the uplink bandwidth unit included in the NUL and the uplink bandwidth unit included in the SUL at the same time.
  • the bandwidth unit is BWP as an example for description.
  • the NUL carrier configured by the network device for the first terminal device includes 4 BWPs, which are BWP#1, BWP#2, BWP#3, and BWP#4, respectively.
  • the SUL carrier configured by the network device for the first terminal device includes 4 BWPs, namely BWP#5, BWP#6, BWP#7, and BWP#8. Among them, BWP#1 and BWP#6 have an association relationship, and BWP#2 and BWP#8 have an association relationship.
  • the handover delay when the first terminal device switches between BWP#1 and BWP#6 is the first delay, and the first terminal device switches between BWP#2 and BWP#5.
  • the handover delay may be the second delay, or another delay among the N kinds of delays except the first delay.
  • the BWP ID corresponding to a bandwidth unit on the NUL is the same as the BWP ID corresponding to a bandwidth unit on the SUL, it can be understood as the bandwidth unit on the NUL and the bandwidth unit on the SUL
  • the switching delay between the bandwidth unit on the NUL and the bandwidth unit on the SUL with the correlation is the first delay, otherwise it is the second delay or the N delays divided by the first Delays other than delays.
  • the network device can instruct the first terminal device to switch the bandwidth unit through physical layer signaling, and the physical layer signaling can be DCI.
  • the physical layer signaling can be DCI.
  • the switching delay corresponding to the switching of the first bandwidth unit to the second bandwidth unit may be the first delay or the third delay, and the third delay may be less than the second delay.
  • the second delay may correspond to the switching delay between the switching of the bandwidth unit of the second terminal device under the same conditions, or it may be another value, which is not specifically limited. The same condition here can be understood as the corresponding switching delay when the second terminal device switches between bandwidth units of different carriers.
  • Embodiment 1 to Embodiment 3 describe how the relevant bandwidth unit is implemented.
  • the embodiments of the present application are not limited to the above embodiments, and other implementation manners may also exist.
  • the first bandwidth unit and the second bandwidth unit are correlated.
  • the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is the first delay, and the frequency-related parameters include at least one of the following:
  • the switching delay between the second bandwidth units is the first delay.
  • Switching between bandwidth units that do not satisfy the foregoing relationship includes N types of delays other than the first delay, and the other delays may be, for example, the second delay.
  • one carrier may correspond to one cell, and different carriers correspond to different cells.
  • the frequency parameters associated with different carriers are different.
  • the frequency parameters associated with the carrier may include: center frequency information of the carrier or frequency position information of the carrier.
  • data transmission includes uplink data transmission and downlink data transmission.
  • the data transmission directions corresponding to the first bandwidth unit and the second bandwidth unit are the same.
  • the data carried on the first bandwidth unit and the second bandwidth unit are both downlink data, for example, the first bandwidth unit and the second bandwidth unit both correspond to the downlink BWP; or, the data carried on the first bandwidth unit and the second bandwidth unit Both are uplink data, for example, the first bandwidth unit and the second bandwidth unit both correspond to the uplink BWP.
  • RRC signaling can be configured to configure multiple bandwidth units in one BWP, and different bandwidth units have at least one different frequency parameter, and the frequency parameter includes at least one of the following:
  • At least one bandwidth unit includes a synchronization signal block (Synchronization Signal Block, SSB).
  • SSB may refer to cell defined SSB (cell defined SSB, CD-SSB).
  • the bandwidth unit is BWP
  • the number of SSB can be one or more, for example, it can correspond to different beam directions, which is not done in this application. Specific restrictions. Taking the SSB included in one BWP as an example, in combination with the foregoing implementation manner, if one BWP corresponds to at least two frequency resource positions, at least one frequency resource position among the at least two frequency resource positions includes the SSB.
  • the BWP configured by the network device for the first terminal device includes a BWP with at least 2 frequency resource positions and a BWP with only 1 frequency resource position
  • the BWP including at least 2 frequency resource positions includes SSB, or only
  • the BWP with one frequency resource location includes the SSB.
  • BWP#1 includes two frequency resource positions, namely frequency resource position 1 and frequency resource position 2, respectively
  • BWP#2 includes one frequency resource position, namely frequency resource position 3.
  • the frequency resource corresponding to frequency resource position 1 includes CD-SSB as an example for illustration, but other situations may also exist.
  • the BWPs configured by the network device for the first terminal device are all BWPs with one frequency resource location, at least one of the BWPs includes the SSB.
  • the BWP including the SSB, especially the CD-SSB, or the frequency resource corresponding to a frequency resource position of the BWP is corresponding to other frequency resource positions corresponding to other BWPs that do not include the SSB or the BWP that does not include the SSB Frequency resources, the frequency resource bandwidth can be smaller.
  • the first terminal device can reside on the BWP including the SSB or the frequency resource corresponding to a frequency resource location including the SSB. Since the BWP including the SSB or the frequency resource corresponding to a frequency resource location is included The bandwidth is smaller than the bandwidth of the frequency resources corresponding to other BWPs or other frequency resource locations.
  • the above design can reduce the power consumption of the first terminal device, and the first terminal device can also perform based on the BWP or the SSB included in the frequency resource Radio resource management (RRM) measurement or radio link monitoring (RLM) measurement ensures basic measurement of the serving cell.
  • RRM Radio resource management
  • RLM radio link monitoring
  • At least one BWP includes a non-CD SSB. Further optionally, it may be configured that the BWP including the non-CD SSB and at least one BWP are correlated, and the handover delay for the first terminal device to switch to the BWP including the non-CD SSB may be the first delay.
  • the number of SSBs configured on the frequency resource corresponding to the BWP or the frequency resource location of the BWP may be one or more, for example, may correspond to multiple different beam directions, which is not specifically limited in this application.
  • BWP#1, BWP#2, and BWP#3 For example, as shown in Figure 9, it is assumed that three BWPs are configured, namely BWP#1, BWP#2, and BWP#3.
  • the configured BWP#1 and BWP#2 belong to a BWP set, BWP#3 does not belong to the BWP set, the BWP switching delay between BWP#1 and BWP#2 is the first delay, BWP#1 or BWP#2
  • the BWP switching delay with BWPs outside the set is greater than the first delay.
  • one non-CD SSB for RRM/RLM is configured on BWP#1 or BWP#2.
  • the non-CD SB is configured on other BWPs.
  • non-CD SSB is configured on BWP#2.
  • CD SB the first terminal device performs data transmission between BWP#1 and the network device.
  • the first terminal device can quickly switch to BWP#2 with the first delay, using BWP
  • the non-CD SSB configured in #2 performs RRM and/or RLM measurement.
  • the first terminal device can quickly switch back to BWP#1 with the first delay to perform data transmission with the network device. Since the first time delay is relatively small and smaller than the second time delay, the interruption time for data transmission is short.
  • a CD-SSB can also be configured on BWP#1 or BWP#3. In FIG. 9, a CD-SSB is configured on BWP#3 as an example for illustration.
  • SSB is configured in the frequency bandwidth corresponding to each BWP or each frequency resource location of the BWP, which reduces the overhead of common reference signal configuration.
  • the aforementioned reference signal can also be used for channel state information (CSI) measurement.
  • CSI channel state information
  • the length of the first delay may be the radio frequency (RF) tuning (retuning) time or less than the RF retuning time.
  • the RF retuning time is, for example, 2 OFDM symbols.
  • the corresponding length of time, or not more than 140 microseconds, is specifically determined according to the capabilities of the terminal device.
  • the goal of the method provided in this application is to allow the frequency resource corresponding to the data transmission of the first terminal device to be in a larger frequency resource.
  • the frequency resource used by the first terminal device for data transmission is adjusted faster, the scheduling scheme used for data transmission between the first terminal device and the network device is, for example, a modulation coding scheme (MCS).
  • MCS modulation coding scheme
  • the network device may notify the first terminal device to support the maximum frequency hopping range of the frequency resource corresponding to data transmission through specific signaling of the first terminal device. For example, it may notify the first terminal device of the virtual carrier or transmission frequency band through RRC signaling. Frequency location and size.
  • the broadcast information sent by the network device will learn the system bandwidth on the network device side, and at the same time, it can report its own terminal type or terminal capabilities by means of capability reporting, for example, The terminal type is a REDCAP terminal, and the terminal capability is its own transmission bandwidth of 20MHz.
  • the network device can notify the first terminal device of the frequency position and size of the virtual carrier or transmission bandwidth through specific signaling of the first terminal device
  • the size of the virtual carrier or transmission band (the size of the transmission band can be understood as the transmission bandwidth) is greater than the bandwidth capability of the first terminal device, and the actual transmission frequency band of the first terminal device will also be configured.
  • the bandwidth of the transmission band is not greater than The bandwidth capability of the first terminal device, for example, the actual transmission frequency band can be configured through the BWP or the initial BWP.
  • the first terminal device can adjust its RF radio frequency position according to the actual transmission frequency band, and then can use the BWP to switch short according to the embodiment of the application. The time delay completes the BWP handover.
  • the data transmission between the network device and the first terminal device is performed after the actual transmission frequency band (that is, the actual transmission bandwidth unit) configured for the first terminal device by the network device or after frequency hopping. It is carried out within the transmission frequency band instead of starting at any position within the configured virtual carrier or frequency resource range of the transmission frequency band.
  • Solution 1 First determine the actual transmission bandwidth unit where the data transmission resource is located.
  • the bandwidth unit is the resource that has been grouped, and the resource scheduling is implemented in the grouped resource (for example, the resource scheduling in the bandwidth unit is implemented).
  • Solution 2 Directly indicate the scheduled data transmission resources in the virtual carrier.
  • Table 6 below compares when data resource allocation methods are resource allocation type 0 (resource allocation type 0, RA type 0) and resource allocation type 1 (resource allocation type 1, RA type 1). ), the data transmission scheduling is in the actual transmission frequency band or the transmission frequency band after frequency hopping (taking BWP as an example, the third column of the table), compared with the virtual carrier or transmission frequency band (taking 100MHz as an example, the fourth column of the table) , Each corresponding physical layer resource indicates the overhead (measured by the number of bits).
  • the first terminal device can implement bandwidth unit switching with a shorter delay, and further, can implement bandwidth unit switching with a shorter delay in a frequency range greater than the bandwidth capability of the first terminal device.
  • the bandwidth capability of the first terminal device is 20MHz or other values not greater than 50MHz.
  • the first terminal device can implement dynamic bandwidth unit switching in a larger frequency range, such as a frequency resource range of 100MHz. .
  • the 100MHz frequency resource range can be considered as a virtual carrier because its carrier bandwidth exceeds the bandwidth capability of the first terminal device.
  • BWP1 includes 4 frequency resource positions, and each frequency resource position can be considered as a sub-BWP, respectively Denoted as BWP1-1 to BWP1-4.
  • the switching delay is the first delay, for example, the first delay is 140 ⁇ s (assuming that only the RF retuning time is considered).
  • Any sub-BWP of BWP1-1 to BWP1-4 is configured independently of the BWP 2 parameters.
  • the handover delay is longer than the first
  • the delay can be the handover delay in the existing NR system, that is, 1ms to 2.5ms (corresponding to the case of handover delay type 1).
  • different BWPs correspond to the same BWP ID, so it can also be understood that hierarchical BWP transmission is realized in the virtual carrier.
  • the methods provided in the embodiments of the present application are respectively introduced from the perspective of interaction between the first terminal device and the network device.
  • the network equipment and the terminal equipment may include hardware structures and/or software modules, which are implemented in the form of hardware structures, software modules, or hardware structures plus software modules. . Whether a certain function among the above-mentioned functions is executed by a hardware structure, a software module, or a hardware structure plus a software module depends on the specific application and design constraint conditions of the technical solution.
  • FIG. 12 and FIG. 13 are schematic structural diagrams of possible communication devices provided by embodiments of this application. These communication devices can implement the functions of the first terminal device or the network device in the foregoing method embodiment, and therefore can also achieve the beneficial effects of the foregoing method embodiment.
  • the communication device may be the terminal device 102 shown in FIG. 1, or the network device 101 shown in FIG. 1, or may be a module (such as a chip ).
  • the communication device 1200 includes a transceiver module 1201 and a processing module 1202.
  • the communication device 1200 may be used to implement the function of the first terminal device or the network device in the method embodiment shown in FIG. 2 above.
  • the transceiver module 1201 is configured to receive bandwidth unit configuration information, and the bandwidth unit configuration information includes information for indicating the first bandwidth.
  • the processing module 1202 is configured to determine to switch from the first bandwidth unit to the second bandwidth unit.
  • the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is the first delay, the first delay is less than the second delay, and the second delay
  • the delay is the switching delay supported by the second terminal device; or the switching delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit is one of the N kinds of delays,
  • the N types of delays are handover delays supported by the first terminal device, N is an integer greater than or equal to 2, and the N types of delays include the first delay.
  • the transceiver module 1201 is used to send bandwidth unit configuration information to the first terminal device, and the bandwidth unit configuration information includes a configuration information for indicating the first terminal device.
  • the processing module 1202 is configured to schedule the data of the first terminal device according to the handover delay.
  • the switching delay is the delay for the first terminal device to switch from the first bandwidth unit to the second bandwidth unit, the switching delay is a first delay, and the first delay is Less than the second delay, the second delay is the handover delay supported by the second terminal device; or the handover delay is one of the N delays, and the N delays are the For the handover delay supported by the first terminal device, N is an integer greater than or equal to 2, and the N types of delays include the first delay.
  • transceiver module 1201 For a more detailed description of the foregoing transceiver module 1201 and processing module 1202, reference may be made to the relevant description in the foregoing method embodiment, which will not be described here.
  • the communication device 1300 includes a processor 1310 and an interface circuit 1320.
  • the processor 1310 and the interface circuit 1320 are coupled with each other.
  • the interface circuit 1320 may be a transceiver or an input/output interface.
  • the communication device 1300 may further include a memory 1330 configured to store instructions executed by the processor 1310 or input data required by the processor 1310 to run the instructions or store data generated after the processor 1310 runs the instructions.
  • the processor 1310 is used to perform the function of the foregoing processing module 1202
  • the interface circuit 1320 is used to perform the function of the foregoing transceiver module 1201.
  • the terminal device chip When the foregoing communication device is a chip applied to a terminal device, the terminal device chip implements the function of the terminal device in the foregoing method embodiment.
  • the terminal device chip receives information from other modules in the terminal device (such as a radio frequency module or antenna), and the information is sent by the network device to the terminal device; or, the terminal device chip sends information to other modules in the terminal device (such as a radio frequency module or antenna).
  • the antenna sends information, which is sent by the terminal device to the network device.
  • the network device chip implements the function of the network device in the foregoing method embodiment.
  • the network device chip receives information from other modules in the network device (such as radio frequency modules or antennas), and the information is sent by the terminal device to the network device; or, the network device chip sends information to other modules in the network device (such as radio frequency modules or antennas).
  • the antenna sends information, which is sent by the network device to the terminal device.
  • the processor in the embodiments of the present application may be a central processing unit (CPU), or may be other general-purpose processors, digital signal processors (digital signal processors, DSP), and application-specific integrated circuits. (application specific integrated circuit, ASIC), field programmable gate array (field programmable gate array, FPGA) or other programmable logic devices, transistor logic devices, hardware components, or any combination thereof.
  • the general-purpose processor may be a microprocessor or any conventional processor.
  • the method steps in the embodiments of the present application can be implemented by hardware, and can also be implemented by a processor executing software instructions.
  • Software instructions can be composed of corresponding software modules, which can be stored in random access memory (RAM), flash memory, read-only memory (ROM), programmable read-only memory (programmable ROM) , PROM), erasable programmable read-only memory (erasable PROM, EPROM), electrically erasable programmable read-only memory (electrically EPROM, EEPROM), register, hard disk, mobile hard disk, CD-ROM or well-known in the art Any other form of storage medium.
  • An exemplary storage medium is coupled to the processor, so that the processor can read information from the storage medium and write information to the storage medium.
  • the storage medium may also be an integral part of the processor.
  • the processor and the storage medium may be located in the ASIC.
  • the ASIC can be located in an access network device or a terminal device.
  • the processor and the storage medium may also exist as discrete components in the access network device or the terminal device.
  • the above embodiments it may be implemented in whole or in part by software, hardware, firmware, or any combination thereof.
  • software it can be implemented in the form of a computer program product in whole or in part.
  • the computer program product includes one or more computer programs or instructions.
  • the computer may be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices.
  • the computer program or instruction may be stored in a computer-readable storage medium or transmitted through the computer-readable storage medium.
  • the computer-readable storage medium may be any available medium that can be accessed by a computer or a data storage device such as a server integrating one or more available media.
  • the usable medium may be a magnetic medium, such as a floppy disk, a hard disk, and a magnetic tape; it may also be an optical medium, such as a DVD; and it may also be a semiconductor medium, such as a solid state disk (SSD).
  • “at least one” refers to one or more, and “multiple” refers to two or more.
  • “And/or” describes the association relationship of the associated objects, indicating that there can be three relationships, for example, A and/or B, which can mean: A alone exists, A and B exist at the same time, and B exists alone, where A, B can be singular or plural.
  • the character “/” generally indicates that the associated object before and after is an “or” relationship; in the formula of this application, the character “/” indicates that the associated object before and after is a kind of "division" Relationship.
  • this application can be provided as methods, systems, or computer program products. Therefore, this application may adopt the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware. Moreover, this application may adopt the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to disk storage, optical storage, etc.) containing computer-usable program codes.
  • a computer-usable storage media including but not limited to disk storage, optical storage, etc.
  • These computer program instructions can also be stored in a computer-readable memory that can guide a computer or other programmable data processing equipment to work in a specific manner, so that the instructions stored in the computer-readable memory produce an article of manufacture including the instruction device.
  • the device implements the functions specified in one process or multiple processes in the flowchart and/or one block or multiple blocks in the block diagram.

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Abstract

La présente invention concerne un procédé et un appareil de transfert intercellulaire permettant de résoudre le problème concernant la manière d'améliorer les performances de transmission de données d'un dispositif de terminal. Dans la présente invention, il est déterminé qu'un retard de transfert intercellulaire lors de la commutation d'un premier dispositif de terminal d'une première unité de largeur de bande vers une seconde unité de largeur de bande est un premier retard, le premier retard étant inférieur à un second retard, et le second retard étant un retard de transfert intercellulaire pris en charge par le second dispositif de terminal, ou il est déterminé que le retard de transfert intercellulaire lors de la commutation du premier dispositif de terminal de la première unité de largeur de bande vers la seconde unité de largeur de bande est un retard parmi N retards, les N retards étant des retards de transfert intercellulaire pris en charge par le premier dispositif de terminal, N étant un entier supérieur ou égal à 2, et les N retards comprenant le premier retard. Un transfert intercellulaire entre des unités de largeur de bande peut être réalisé plus rapidement et, par conséquent, le premier dispositif de terminal peut transmettre rapidement et dynamiquement des données dans une largeur de bande système plus grande, ce qui garantit l'équilibre d'un gain de planification sélective de fréquence ou d'un gain de diversité de fréquence et/ou d'une charge de cellule.
PCT/CN2021/087219 2020-05-15 2021-04-14 Procédé et appareil de transfert intercellulaire WO2021227755A1 (fr)

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US20230079810A1 (en) 2023-03-16
EP4142363A4 (fr) 2023-11-08

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